Environment-friendly wire arranging device and wire arranging method for computer case
By utilizing gas circulation and seawater heat exchange in the environmentally friendly cable management system of the underwater data center, the heat dissipation problem of data cables was solved, enabling stable computer operation and reducing operating costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- JIANGSU INST OF ECONOMIC & TRADE TECH
- Filing Date
- 2023-06-20
- Publication Date
- 2026-04-10
AI Technical Summary
In existing technologies, the heat from the data cables in underwater data centers is difficult to dissipate after they are centrally stored, leading to cable damage and affecting the normal operation of the computer.
The device employs an environmentally friendly cable management system, which includes components such as a housing, a sealing cover, a placement platform, a data output receiver, a cable management shell, a top cover, an air intake pipe, an air return pipe, a fan blade assembly, and an air jet pipe. It achieves heat dissipation and cooling of the cables through gas circulation and seawater heat exchange, and utilizes the seabed water flow to drive the fan blade assembly to rotate, thereby achieving gas circulation.
It effectively reduces the temperature of the data cables, ensuring the normal operation of the computer, and requires no additional power source, making it green and environmentally friendly, and improving the stability and security of the computer.
Smart Images

Figure CN121832718A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of underwater data center technology, specifically, it relates to an environmentally friendly cable management device and method for computer chassis. Background Technology
[0002] The rapid development of the data center industry has led to an explosive growth in energy consumption, as well as an increase in the high cost of data maintenance. To address this issue, existing technologies have adopted the method of placing data centers on the seabed to reduce maintenance costs. By placing data centers underwater, the cost of cooling computers can be reduced. Moreover, if data centers are placed alongside offshore renewable energy sources, they may also generate zero emissions. At the same time, underwater data centers can also minimize the corrosion problems caused by oxygen and water vapor.
[0003] When installing a data center, the first step is to organize the data cables on the computer group. In existing technologies, cable management shells are typically used to organize and store multiple data cables to solve the problem of messy data cables. While organizing and storing multiple data cables can make the inside of the chassis very neat and easy to maintain, the heat generated by the data cables during data transmission may not be dissipated in time due to the concentration of multiple data cables in the cable management shell. This may cause the data cables to be damaged due to high temperature, affecting the normal operation of the computer. In view of this, the present invention is proposed. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the shortcomings of the prior art and provide an environmentally friendly cable management device for computer chassis that can overcome or at least partially solve the above problems.
[0005] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by the present invention is as follows: an environmentally friendly cable management device for a computer chassis, comprising a chassis and a sealing cover, wherein the chassis and the sealing cover are sealed together by fixing bolts, a placement platform is slidably connected inside the chassis, and a computer group and a data output receiver are mounted on the placement platform, wherein the data output receiver is located near the sealing cover, and the computer group and the data output receiver are electrically connected by an internal data cable, further comprising: a cable management shell, installed above the computer group and the data output receiver; and a top cover, covering the cable management shell, wherein the internal data cable is neatly arranged and limited between the cable management shell and the top cover. The cable management chamber is formed between the air inlet and outlet of the housing. An air intake pipe and an air return pipe are connected to the air outlet and return pipe, respectively, and a drive pipe connects the air intake pipe and the air return pipe. A fan blade assembly is rotatably connected inside the drive pipe. A jet pipe is fixedly installed at the top of the housing. The outlet of the return pipe is connected to the inlet of the jet pipe. The jet pipe has multiple jet holes facing the top cover. When the fan blade assembly rotates, the air intake pipe draws gas from the housing and allows the gas to enter the jet pipe through the return pipe. This causes the jet holes of the jet pipe to spray gas onto the cable management shell containing the internal data cables and the surface of the top cover.
[0006] To facilitate the use of water flow to drive the fan blade assembly, a rotating shaft is further included. The rotating shaft is vertically rotatably connected inside the drive tube. One end of the rotating shaft extending upward from the drive tube is fixedly connected to multiple drive blades at equal intervals around the circumference. A first bevel gear is fixedly connected to the rotating shaft inside the drive tube. A transmission shaft is rotatably connected laterally inside the drive tube via a first bracket. A second bevel gear meshing with the first bevel gear is fixedly connected to one end of the transmission shaft near the rotating shaft. The other end of the transmission shaft is fixedly connected to the fan blade assembly.
[0007] To further improve the sealing between the box and the sealing cover, an annular storage shell is fixedly connected to the outer side of the sealing cover where it contacts the box. The annular storage shell slides against the box. An annular airbag is installed inside the annular storage shell. A water supply cylinder is installed on the box. The water inlet of the water supply cylinder is connected to the water inlet of the annular airbag through a water supply pipe. A drain pipe is connected to the drain outlet of the annular airbag. A first one-way valve is installed in the water inlet and drain outlet of the annular airbag, respectively.
[0008] Furthermore, it also includes a reciprocating screw, which rotates inside a water delivery cylinder. The water delivery cylinder is installed at the upper end of the housing near the rotating shaft. One end of the rotating shaft extending downwards from the drive tube is fixedly connected to the reciprocating screw. Guide rods are symmetrically fixedly connected to both sides of the reciprocating screw inside the water delivery cylinder. A piston disc is slidably connected inside the water delivery cylinder through the guide rods. The piston disc is threadedly connected to the reciprocating screw. An air inlet is provided on the side of the water delivery cylinder away from the water outlet. The water inlet and outlet of the water delivery cylinder are both located at the lower end of the reciprocating screw. A second one-way valve is installed in the water inlet and outlet of the water delivery cylinder respectively.
[0009] To further improve the sealing between the sealing cover and the external data cable, the data output receiver is electrically connected to the external data cable on the side near the sealing cover. A through-hole is provided in the middle of the sealing cover, through which the external data cable passes. The through-hole of the sealing cover and the external data cable are sealed by a first sealing ring.
[0010] To further prevent the first sealing ring from being corroded, a limiting ring is installed on the outer side of the sealing cover via a second bracket. The limiting ring is sleeved on the outer side of the external data cable. A rotating ring is rotatably connected to the side of the limiting ring near the sealing cover via a connecting rod. Multiple first scrapers are fixedly connected at equal intervals around the rotating ring near the sealing cover. The first scrapers slide against the first sealing ring. A water nozzle is connected to the drain outlet of the drain pipe via a water pipe connector. The nozzle of the water nozzle faces the first scraper. The water nozzle is mounted on the second bracket via a mounting plate.
[0011] To facilitate the removal of marine microorganisms and algae from the outer wall of the sealing cap, the first scraper is further slidably attached to the outer wall of the sealing cap on the side away from the rotating ring.
[0012] To further improve the sealing performance of the drive tube, the connection between the drive tube and the rotating shaft is sealed by a second sealing ring. Two second scrapers are symmetrically fixedly connected to the rotating shaft near the second sealing ring, and the second scrapers slide against the second sealing ring.
[0013] To facilitate the insulation of the heat emitted by the computer unit and prevent the heat emitted by the computer unit from being directly conducted to the internal data wires inside the cable management shell, a heat insulation plate is further fixedly connected to the side of the computer unit adjacent to the cable management shell.
[0014] A cable management method for an environmentally friendly cable management device used in computer cases includes the following steps:
[0015] S1. First, install the computer group and data output receiver on the placement platform in sequence;
[0016] S2. Next, connect the computer group and the data output receiver electrically via data cables.
[0017] S3. Then install the cable management case above the computer group and data output receiver;
[0018] S4. Finally, organize the multiple connected data cables inside the cable management case and close the top cover to complete the data cable management operation.
[0019] After adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art: The present invention, through the combined use of the air intake pipe, air return pipe, drive pipe, fan blade assembly, air distribution pipe, etc., can not only make the gas in the box flow in a circulatory manner so as to exchange heat more fully with the cool seawater and ensure that the computer can operate within a suitable temperature range, but also spray gas onto the cable management shell while the gas is circulating, thereby accelerating the airflow speed around the cable management shell so as to quickly remove the heat dissipated by the data cables, thereby facilitating effective cooling of the data cables and effectively ensuring the normal operation of the computer. Moreover, the whole process makes full use of the kinetic energy generated by the seabed water flow, eliminating the need for an additional power source, making it more green and environmentally friendly.
[0020] The specific embodiments of the present invention will now be described in further detail with reference to the accompanying drawings. Attached Figure Description
[0021] In the attached diagram:
[0022] Figure 1 This is a schematic diagram of the structure of an environmentally friendly cable management device for a computer chassis proposed in this invention. Figure 1 ;
[0023] Figure 2 This is a schematic diagram of the structure of an environmentally friendly cable management device for a computer chassis proposed in this invention. Figure 2 ;
[0024] Figure 3 This is a schematic diagram of the structure of the environmentally friendly cable management device for computer chassis proposed in this invention, including the chassis, placement platform, computer group, cable management shell, air jet pipe, air intake pipe and air return pipe.
[0025] Figure 4 This is a schematic diagram of the structure of a placement platform, computer group, data output receiver, cable management shell, top cover and heat insulation plate in an environmentally friendly cable management device for computer chassis proposed in this invention.
[0026] Figure 5This is a schematic diagram of the structure of the air intake pipe, air return pipe, drive pipe, air jet pipe, tensioning plate, fan blade assembly, and water delivery cylinder in an environmentally friendly cable management device for computer chassis proposed in this invention.
[0027] Figure 6 This is a schematic diagram of the structure of the drive tube, fan blade assembly, rotating shaft, transmission shaft, drive blade plate, water delivery cylinder, reciprocating screw, and piston disc in an environmentally friendly cable management device for computer chassis proposed in this invention.
[0028] Figure 7 This is a schematic diagram of the structure of the air jet pipe, tension plate, guide pipe, telescopic rod, tension spring, and clamping plate in an environmentally friendly cable management device for computer chassis proposed in this invention.
[0029] Figure 8 This is a schematic diagram of the exploded structure of the sealing cover, annular storage shell, and annular airbag in an environmentally friendly cable management device for computer chassis proposed in this invention.
[0030] Figure 9 This is an exploded view of the sealing cover, first sealing ring, limiting ring, rotating ring, and first scraper in an environmentally friendly cable management device for a computer chassis proposed in this invention. Figure 1 ;
[0031] Figure 10 This is an exploded view of the sealing cover, first sealing ring, limiting ring, rotating ring, and first scraper in an environmentally friendly cable management device for a computer chassis proposed in this invention. Figure 2 .
[0032] In the diagram: 1. Housing; 101. Intake pipe; 102. Return pipe; 2. Sealing cover; 201. Annular storage shell; 202. Annular airbag; 203. First sealing ring; 204. Limiting ring; 205. Rotating ring; 206. Connecting rod; 207. First scraper; 208. Mounting plate; 209. Spray head; 2010. Drain pipe; 3. Drive pipe; 301. Rotating shaft; 302. Drive blade; 303. Transmission shaft; 304. Fan blade assembly; 05. Reciprocating screw; 306. Water delivery cylinder; 3061. Guide rod; 307. Piston disc; 308. Second sealing ring; 309. Second scraper; 3010. Water delivery pipe; 3011. Jet pipe; 3012. Flow guide pipe; 4. Placement platform; 401. Computer unit; 402. Data output receiver; 403. Cable management shell; 404. Top cover; 405. Insulation board; 5. Telescopic rod; 501. Tension spring; 502. Tensioning plate; 503. Clamping plate. Detailed Implementation
[0033] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate the present invention, but are not intended to limit the scope of the present invention.
[0034] Example 1: Refer to Figures 1-3 An environmentally friendly cable management device for computer cases includes a case 1 and a sealing cover 2. The case 1 and the sealing cover 2 are sealed together by fixing bolts. A placement platform 4 is slidably connected inside the case 1 for easy placement. After being slid in, the placement platform 4 is locked in the case 1 by corresponding fixing screws. A computer unit 401 and a data output receiver 402 are installed on the placement platform 4. The data output receiver 402 is located near the sealing cover 2. The computer unit 401 and the data output receiver 402 are electrically connected by an internal data cable. The device also includes a cable management shell 403, installed above the computer unit 401 and the data output receiver 402; and a top cover 404, which covers the cable management shell 403. The internal data cables are neatly arranged and limited between the cable management shell 403 and the top cover 404. Inside the cable management cavity formed between the two parts; the air inlet and outlet at the upper end of the housing 1 are respectively connected to the air intake pipe 101 and the air return pipe 102, and the air intake pipe 101 and the air return pipe 102 are connected to the drive pipe 3; the fan blade assembly 304 is rotatably connected inside the drive pipe 3; the jet pipe 3011 is fixedly installed on the top inside the housing 1, the air outlet of the air return pipe 102 is connected to the air inlet of the jet pipe 3011, and the jet pipe 3011 has multiple jet holes, with the jet holes facing the upper cover 404; therefore, when the fan blade assembly 304 rotates, the air intake pipe 101 will draw the gas inside the housing 1 and allow the gas to enter the jet pipe 3011 through the air return pipe 102, so that the jet holes of the jet pipe 3011 will spray gas onto the cable management shell 403, which contains the internal data wires, and the surface of the upper cover 404.
[0035] Refer to Figure 3 , Figure 5 , Figure 6 It also includes a rotating shaft 301, which is vertically rotatably connected inside the drive tube 3. One end of the rotating shaft 301 extends upward from the drive tube 3 and is fixedly connected to multiple drive blades 302 at equal intervals around the circumference. A first bevel gear is fixedly connected to the rotating shaft 301 inside the drive tube 3. A transmission shaft 303 is rotatably connected to the drive tube 3 through a first bracket. A second bevel gear that meshes with the first bevel gear is fixedly connected to one end of the transmission shaft 303 near the rotating shaft 301. The other end of the transmission shaft 303 is fixedly connected to the fan blade assembly 304.
[0036] When it is necessary to manage the internal data cables between the computer group 401 and the data output receiver 402 to prevent them from getting tangled, a cable management shell 403 can be installed on top of the computer group 401 and the data output receiver 402. Multiple internal data cables can then be neatly arranged inside the cable management shell 403. Finally, the top cover 404 is placed on the cable management shell 403 to complete the cable management operation. When it is necessary to submerge the enclosure 1 at the bottom of the sea for more environmentally friendly cooling of the computer, the neatly arranged computer group 401 and data output receiver 402 can be pushed into the enclosure 1 using the placement platform 4. Then, the sealing cover 2 can be connected to the opening of the enclosure 1 using fixing bolts to seal the enclosure 1. To reduce the corrosive effects of oxygen and moisture in the air inside enclosure 1 on the computer, the air inside enclosure 1 can be extracted through an extraction pipe, and nitrogen can be introduced into enclosure 1 through a delivery pipe. Introducing nitrogen helps prevent oxidation, maintains storage stability, and prevents contamination. Therefore, filling enclosure 1 with nitrogen effectively protects the computer's stable operation, extends its lifespan, and enhances its safety. After these preliminary steps are completed, enclosure 1 can be gently lowered into the sea using lifting equipment. The cooler seawater will then cool the computer, eliminating the need for additional cooling equipment and effectively reducing operating costs. When the computer generates heat while operating underwater, the temperature will decrease. The heat generated by the computer is absorbed by the nitrogen gas injected into the casing 1. The heated nitrogen gas then exchanges heat with the cooler seawater, ensuring the computer operates within a suitable temperature range. Simultaneously, when ocean currents occur, the drive blades 302 rotate the rotating shaft 301 under the impact of the water flow. The rotating shaft 301 drives the first bevel gear, which in turn drives the transmission shaft 303 via the second bevel gear. The transmission shaft 303 then drives the fan blade assembly 304, which in turn draws nitrogen gas from the casing 1 through the intake pipe 101 and returns it to the casing 1 through the return pipe 102, thus circulating the nitrogen gas. When the data cables reach the intake pipe 101, return pipe 102, and drive pipe 3, they can exchange heat more thoroughly with the cooler seawater, further improving the cooling effect on the computer. However, in existing technologies, the cable management shell 403 for organizing data cables is typically made of lightweight, highly malleable plastic. Since plastic has poor cooling properties, and multiple data cables are organized within the cable management shell 403, the heat generated during data transmission is concentrated within the shell. This heat may not dissipate quickly enough, causing the data cables to remain at a high temperature, potentially leading to damage or malfunction due to overheating.To address the issue of nitrogen gas cooling down after heat exchange, which affects the normal operation of the computer, the fan blade assembly 304 rotates and sprays it out through the return air pipe 102. At this point, the nitrogen gas first enters the jet pipe 3011. Since the lower surface of the jet pipe 3011, located directly above the cable management shell 403, has multiple jet holes, the nitrogen gas delivered into the jet pipe 3011 is sprayed onto the cable management shell 403 through these holes. This accelerates the airflow around the cable management shell 403, quickly carrying away the heat dissipated by the data cables, thus effectively cooling the data cables and ensuring the normal operation of the computer.
[0037] It should be noted that when the direction of ocean currents changes, causing the blade 302 to drive the fan blade assembly 304 to rotate in the opposite direction, the direction of nitrogen flow will change. Therefore, the jet pipe 3011 will absorb the heat emitted around the cable management shell 403 through the jet holes, thereby accelerating the flow speed of the gas around the cable management shell 403 and providing a certain heat dissipation effect for the data cable. Thus, regardless of whether the direction of ocean currents changes, the cooling effect on the data cable can be effectively guaranteed.
[0038] Example 2: Refer to Figure 6 An environmentally friendly cable management device for computer cases is basically the same as in Embodiment 1, but further, an annular storage shell 201 is fixedly connected to the outer side of the sealing cover 2 where it is in contact with the case 1. The annular storage shell 201 and the case 1 are slidably in contact. An annular airbag 202 is installed inside the annular storage shell 201. A water supply cylinder 306 is installed on the case 1. The water supply port of the water supply cylinder 306 is connected to the water inlet of the annular airbag 202 through a water supply pipe 3010. A drain pipe 2010 is connected to the drain port of the annular airbag 202. A first one-way valve is installed in the water inlet and drain port of the annular airbag 202 respectively.
[0039] Reference Figure 8 It also includes a reciprocating screw 305, which rotates inside a water delivery cylinder 306. The water delivery cylinder 306 is installed on the upper end of the housing 1 near the rotating shaft 301. One end of the rotating shaft 301 extending downwards from the drive tube 3 is fixedly connected to the reciprocating screw 305. Guide rods 3061 are symmetrically fixedly connected to both sides of the reciprocating screw 305 inside the water delivery cylinder 306. A piston disc 307 is slidably connected inside the water delivery cylinder 306 through the guide rods 3061. The piston disc 307 is threadedly connected to the reciprocating screw 305. An air inlet is opened on the side of the water delivery cylinder 306 away from the water outlet. The water inlet and outlet of the water delivery cylinder 306 are both located at the lower end of the reciprocating screw 305. A second one-way valve is installed in the water inlet and outlet of the water delivery cylinder 306 respectively.
[0040] When the rotating shaft 301 drives the fan blade assembly 304 to rotate, causing the gas inside the housing 1 to circulate, the rotating shaft 301 simultaneously drives the reciprocating screw 305 connected below to rotate. The reciprocating screw 305, in conjunction with the guide rod 3061, drives the piston disc 307 to move up and down within the water delivery cylinder 306, thus allowing seawater to be delivered into the annular airbag 202 through the drain pipe 2010. As the amount of seawater in the annular airbag 202 increases, the annular airbag 202 continuously expands. When the outer surface of the annular airbag 202 is tightly attached to the inner wall of the housing 1, the sealing cover 2, and the annular storage shell 201, the annular airbag 202 becomes saturated, and then the annular air... Excess seawater inside the annular airbag 202 is discharged through the drain pipe 2010. By continuously supplying seawater into the annular airbag 202, the annular airbag 202 can always be in an inflated state. Thus, when the housing 1 is connected to the sealing cover 2 and placed in seawater, the sealing performance between the housing 1 and the sealing cover 2 can be improved, effectively preventing seawater from seeping into the housing 1 through the gap between the housing 1 and the sealing cover 2 and causing corrosion to the computer. This effectively improves the sealing performance of the housing 1. In order to prevent seawater from corroding the annular airbag 202 and causing damage to the annular airbag 202, corrosion-resistant elastic rubber support can be used for the annular airbag 202 to improve its service life.
[0041] Example 3: Reference Figure 9 , Figure 10 An environmentally friendly cable management device for computer chassis is basically the same as that in Embodiment 2. Furthermore, the data output receiver 402 is electrically connected to an external data wire on the side near the sealing cover 2. A through-hole is provided in the middle of the sealing cover 2. The external data wire passes through the through-hole of the sealing cover 2. The through-hole of the sealing cover 2 and the external data wire are sealed by a first sealing ring 203.
[0042] Reference Figure 9 , Figure 10 A limiting ring 204 is installed on the outside of the sealing cover 2 via a second bracket. The limiting ring 204 is sleeved on the outside of the external data wire. A rotating ring 205 is rotatably connected to the side of the limiting ring 204 near the sealing cover 2 via a connecting rod 206. Multiple first scrapers 207 are fixedly connected to the side of the rotating ring 205 near the sealing cover 2 in a circumferentially spaced manner. The first scrapers 207 slide against the first sealing ring 203. A spray head 209 is connected to the drain outlet of the drain pipe 2010 via a water pipe connector. The spray nozzle of the spray head 209 faces the first scraper 207. The spray head 209 is mounted on the second bracket via a mounting plate 208.
[0043] Reference Figure 8 The side of the first scraper 207 away from the rotating ring 205 slides against the outer wall of the sealing cover 2.
[0044] By setting a first sealing ring 203 at the through-hole of the sealing cover 2, the sealing performance between the sealing cover 2 and the external data cable can be improved, preventing seawater from seeping into the cabinet 1 and causing computer malfunction. When the seawater in the annular airbag 202 is saturated, it will be discharged through the drain pipe 2010 and delivered to the spray head 209. After being pressurized by the spray head 209, the seawater will be sprayed onto the first scraper 207. The first scraper 207 will then rotate around the first sealing ring 203 under the impact of the water flow, thereby removing the seawater from the first sealing ring 203. The attachment of marine microorganisms and algae is scraped off, preventing the first sealing ring 203 from being corroded. This effectively ensures the sealing effect of the first sealing ring 203 at the connection between the sealing cover 2 and the external data cable. By making the first scraper 207 slide against the outer wall of the sealing cover 2 close to the first sealing ring 203, when the first scraper 207 removes the first sealing ring 203, it can also remove marine microorganisms and algae from the outer wall of the sealing cover 2, effectively ensuring the cleanliness near the first sealing ring 203 and reducing corrosion of the sealing cover 2.
[0045] Example 4: Reference Figure 5 , Figure 6 An environmentally friendly cable management device for computer chassis is basically the same as in Embodiment 3, but further, the connection between the drive tube 3 and the rotating shaft 301 is sealed by a second sealing ring 308. Two second scrapers 309 are symmetrically fixedly connected to the rotating shaft 301 near the second sealing ring 308. The second scrapers 309 slide against the second sealing ring 308. By setting the second sealing ring 308 at the connection between the drive tube 3 and the rotating shaft 301, the sealing performance of the drive tube 3 can be improved, preventing seawater from seeping into the chassis 1 through the drive tube 3 and causing computer malfunction. At the same time, when the rotating shaft 301 rotates, the rotating shaft 301 will drive the second scrapers 309 to rotate, thereby scraping off the marine microorganisms and algae attached to the second sealing ring 308, preventing the second sealing ring 308 from being corroded, and effectively ensuring the sealing effect of the second sealing ring 308 at the connection between the drive tube 3 and the rotating shaft 301.
[0046] Reference Figure 4 A heat insulation plate 405 is fixedly connected to the side of the computer unit 401 adjacent to the cable management shell 403. By setting the heat insulation plate 405 between the computer unit 401 and the cable management shell 403, the heat emitted by the computer unit 401 can be isolated, preventing the heat emitted by the computer unit 401 from being directly conducted to the internal data wires inside the cable management shell 403, thus preventing the temperature of the internal data wires from remaining high and effectively ensuring the stable transmission of data and the service life of the internal data wires.
[0047] Example 5: Refer to Figure 5 , Figure 7 , Figure 8 An environmentally friendly cable management device for computer cases is basically the same as in embodiment 4, but further, telescopic rods 5 are fixedly connected at equal intervals on the upper inner wall of the case 1, tension springs 501 are sleeved on the telescopic rods 5, and tension plates 502 are fixedly connected to the lower end of the telescopic rods 5. The two ends of the tension springs 501 are fixedly connected to the inner wall of the case 1 and the tension plates 502 respectively. Two sets of clamps 503 are symmetrically rotated on both sides of the tension plates 502 through torsion springs. The jet pipe 3011 is arranged in a ring, and the telescopic rods 5 are located in the middle of the jet pipe 3011. A guide pipe 3012 is fixedly connected to the jet hole of the jet pipe 3011, and the air outlet of the guide pipe 3012 is inclined downward toward the adjacent clamps 503.
[0048] After the internal data cables of the computer unit 401 and data output receiver 402 are neatly arranged into the cable management cavity formed between the cable management shell 403 and the top cover 404, the computer unit 401 and data output receiver 402 can be moved into the housing 1 via the placement platform 4. When the computer unit 401 and data output receiver 402 are moved into the housing 1, the tension plate 502 can overcome the elastic force of the tension spring 501 and move upward, positioning it above the top cover 404. This facilitates the smooth entry of the computer unit 401 and data output receiver 402 into the housing 1. After the computer unit 401 and data output receiver 402 are moved into the housing 1, the cable management shell 403 will be smoothly attached to the computer unit 401 under the tension of the tension plate 502. On the 01, when the heat-exchanged gas is ejected through the jet pipe 3011, the gas will be sprayed onto the clamping plate 503 under the guidance of the guide pipe 3012. Then, the clamping plate 503 will rotate under the force of the gas impact, overcoming the torsion of the torsion spring, until the clamping plate 503 is in contact with the side wall of the cable management shell 403. The bottom side of the clamping plate 503 is provided with anti-slip texture, which can further stabilize it after contact. Then, the cable management shell 403 can be stably positioned in the cabinet 1 under the clamping of the tension plate 502 and the clamping plate 503. This effectively avoids the cable management shell 403 causing the internal data cables to shake when the water flows into the cabinet 1, so as to prevent damage to multiple internal data cables due to mutual friction. This effectively improves the protection of the internal data cables and ensures the normal operation of the computer.
[0049] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention in any way. Although the present invention has been disclosed above with reference to preferred embodiments, it is not intended to limit the present invention.
Claims
1. An environmentally friendly cable management device for a computer chassis, comprising a chassis (1) and a sealing cover (2), wherein the chassis (1) and the sealing cover (2) are sealed together by fixing bolts, a placement platform (4) is slidably connected inside the chassis (1), a computer assembly (401) and a data output receiver (402) are mounted on the placement platform (4), the data output receiver (402) is positioned near the sealing cover (2), and the computer assembly (401) and the data output receiver (402) are electrically connected by an internal data cable, characterized in that, Also includes: A cable management housing (403) is installed above the computer group (401) and the data output receiver (402); The upper cover (404) covers the cable management shell (403), and the internal data wires are neatly arranged and limited in the cable management cavity formed between the cable management shell (403) and the upper cover (404); The air inlet and air outlet at the upper end of the box (1) are respectively connected to an air intake pipe (101) and an air return pipe (102), and a drive pipe (3) is connected between the air intake pipe (101) and the air return pipe (102). The fan blade assembly (304) is rotatably connected inside the drive tube (3); The jet pipe (3011) is fixedly installed on the top of the box (1). The outlet of the return air pipe (102) is connected to the inlet of the jet pipe (3011). The jet pipe (3011) has multiple jet holes, and the jet holes face the top cover (404). When the fan blade assembly (304) rotates, the suction pipe (101) will draw gas from the housing (1) and the gas will enter the jet pipe (3011) through the return pipe (102), so that the jet hole of the jet pipe (3011) will spray gas onto the surface of the cable management shell (403) and the top cover (404) which are equipped with internal data wires.
2. The environmentally friendly cable management device for a computer chassis according to claim 1, characterized in that, It also includes a rotating shaft (301), which is vertically rotatably connected inside the drive tube (3). One end of the rotating shaft (301) extends upward out of the drive tube (3) and is fixedly connected with multiple drive blades (302) at equal intervals around the circumference. A first bevel gear is fixedly connected to the rotating shaft (301) inside the drive tube (3). A transmission shaft (303) is rotatably connected to the drive tube (3) through a first bracket. A second bevel gear that meshes with the first bevel gear is fixedly connected to one end of the transmission shaft (303) near the rotating shaft (301). The other end of the transmission shaft (303) is fixedly connected to the fan blade assembly (304).
3. The environmentally friendly cable management device for a computer chassis according to claim 2, characterized in that, An annular storage shell (201) is fixedly connected to the outer side of the sealing cover (2) where it is in contact with the box body (1). The annular storage shell (201) slides against the box body (1). An annular airbag (202) is installed inside the annular storage shell (201). A water supply cylinder (306) is installed on the box body (1). The water inlet of the water supply cylinder (306) is connected to the water inlet of the annular airbag (202) through a water supply pipe (3010). A drain pipe (2010) is connected to the drain outlet of the annular airbag (202). A first one-way valve is installed in the water inlet and drain outlet of the annular airbag (202).
4. The environmentally friendly cable management device for a computer chassis according to claim 3, characterized in that, It also includes a reciprocating lead screw (305), which rotates inside a water delivery cylinder (306). The water delivery cylinder (306) is installed on the upper end of the housing (1) near the rotating shaft (301). One end of the rotating shaft (301) extending downwards from the drive tube (3) is fixedly connected to the reciprocating lead screw (305). Guide rods (3061) are symmetrically fixedly connected to both sides of the reciprocating lead screw (305) inside the water delivery cylinder (306). A piston disc (307) is slidably connected inside the water delivery cylinder (306) via a guide rod (3061). The piston disc (307) is threadedly connected to the reciprocating screw (305). An air inlet is provided on the side of the water delivery cylinder (306) away from the water outlet. The water inlet and outlet of the water delivery cylinder (306) are both located at the lower end of the reciprocating screw (305). A second one-way valve is installed in the water inlet and outlet of the water delivery cylinder (306).
5. An environmentally friendly cable management device for a computer chassis according to claim 3, characterized in that, The data output receiver (402) is electrically connected to an external data wire on the side near the sealing cover (2). A through-hole is provided in the middle of the sealing cover (2). The external data wire passes through the through-hole of the sealing cover (2). The through-hole of the sealing cover (2) and the external data wire are sealed by a first sealing ring (203).
6. An environmentally friendly cable management device for a computer chassis according to claim 5, characterized in that, A limiting ring (204) is installed on the outside of the sealing cover (2) via a second bracket. The limiting ring (204) is sleeved on the outside of the external data cable. A rotating ring (205) is rotatably connected to the side of the limiting ring (204) near the sealing cover (2) via a connecting rod (206). Multiple first scrapers (207) are fixedly connected to the side of the rotating ring (205) near the sealing cover (2) at equal intervals around the circumference. The first scrapers (207) slide against the first sealing ring (203). A spray head (209) is connected to the drain outlet of the drain pipe (2010) via a water pipe connector. The spray nozzle of the spray head (209) faces the first scraper (207). The spray head (209) is mounted on the second bracket via a mounting plate (208).
7. An environmentally friendly cable management device for a computer chassis according to claim 6, characterized in that, The side of the first scraper (207) away from the rotating ring (205) slides against the outer wall of the sealing cover (2).
8. An environmentally friendly cable management device for a computer chassis according to claim 3, characterized in that, The connection between the drive tube (3) and the rotating shaft (301) is sealed by a second sealing ring (308). Two second scrapers (309) are symmetrically fixedly connected to the rotating shaft (301) near the second sealing ring (308). The second scrapers (309) slide against the second sealing ring (308).
9. An environmentally friendly cable management device for a computer chassis according to claim 1, characterized in that, A heat insulation plate (405) is fixedly connected to the side of the computer unit (401) adjacent to the cable management shell (403).
10. A cable management method for an environmentally friendly cable management device for a computer chassis, used in the environmentally friendly cable management device for a computer chassis as described in claim 1, characterized in that, Includes the following steps: S1. First, install the computer group (401) and the data output receiver (402) on the placement platform (4) in sequence; S2. Next, the computer unit (401) and the data output receiver (402) are electrically connected via data cables; S3. Then install the cable management case (403) above the computer group (401) and the data output receiver (402); S4. Finally, arrange the multiple connected data cables inside the cable management shell (403) and close the top cover (404) on the cable management shell (403) to complete the cable management operation.